首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Fast and Accurate Pressure-Drop Prediction in Straightened Atherosclerotic Coronary Arteries
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Fast and Accurate Pressure-Drop Prediction in Straightened Atherosclerotic Coronary Arteries

机译:拉直动脉粥样硬化冠状动脉快速准确的压降预测

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Atherosclerotic disease progression in coronary arteries is influenced by wall shear stress. To compute patient-specific wall shear stress, computational fluid dynamics (CFD) is required. In this study we propose a method for computing the pressure-drop in regions proximal and distal to a plaque, which can serve as a boundary condition in CFD. As a first step towards exploring the proposed method we investigated ten straightened coronary arteries. First, the flow fields were calculated with CFD and velocity profiles were fitted on the results. Second, the Navier-Stokes equation was simplified and solved with the found velocity profiles to obtain a pressure-drop estimate (Delta p((1))). Next, Delta p((1)) was compared to the pressure-drop from CFD (Delta p(CFD)) as a validation step. Finally, the velocity profiles, and thus the pressure-drop were predicted based on geometry and flow, resulting in Delta p(geom). We found that Delta p(1) adequately estimated Delta p(CFD) with velocity profiles that have one free parameter beta. This beta was successfully related to geometry and flow, resulting in an excellent agreement between Delta p(CFD) and Delta p(geom): 3.9 +/- 4.9% difference at Re = 150. We showed that this method can quickly and accurately predict pressure-drop on the basis of geometry and flow in straightened coronary arteries that are mildly diseased.
机译:冠状动脉中的动脉粥样硬化疾病进展受壁剪切应力的影响。为了计算患者特定的墙面剪切应力,需要计算流体动力学(CFD)。在该研究中,我们提出了一种用于计算近端和远端的区域中的压力下降的方法,该斑块可以用作CFD中的边界条件。作为探索所提出的方法的第一步,我们调查了十个拉直冠状动脉。首先,使用CFD计算流场,并安装在结果上的速度轮廓。其次,通过发现速度曲线简化并解决了Navier-Stokes方程以获得压力降估计(Delta P((1)))。接下来,将Delta P((1))与来自CFD的压力降进行比较(Delta P(CFD))作为验证步骤。最后,基于几何和流动来预测速度分布,从而预测压降,导致Delta P(Geom)。我们发现Delta P(1)充分估计了ΔP(CFD),具有具有一个自由参数β的速度配置文件。该测试版与几何和流量成功相关,导致Delta P(CFD)和Delta P(Geom)之间的良好协议:3.9 +/- 4.9%在RE = 150差异。我们表明该方法可以快速准确地预测基于几何形状和流动的压力下降,患有轻微患病的拉直冠状动脉。

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